A spdt or SPMT switch may include a transformer having a primary winding and a secondary winding, where a first end of the secondary winding is connected to a single pole port, where a first end of the primary winding is connected to a first throw port; a first switch having a first end and a second end, where the first end is connected to ground; and a second switch, where a second end of the secondary winding is connected to both a second end of the first switch and a first end of the second switch, where a second end of the second switch is connected to a second throw port, where the first switch controls a first communication path between the single pole port and the first throw port, and where the second switch controls a second communication path between the second throw port and the single pole port.
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1. A spdt (single pole double throw) or SPMT (single pole multi-throw) switch system, comprising:
a transformer having a primary winding and a secondary winding, wherein the primary winding and the secondary winding each have respective first and second ends, wherein the first end of the secondary winding is connected to a single pole port, wherein the first end of the primary winding is connected to a first throw port;
a first switch having a first end and a second end, wherein the first end is connected to ground; and
a second switch having a first end and a second end, wherein the second end of the secondary winding is connected to both the second end of the first switch and the first end of the second switch, wherein the second end of the second switch is connected to a second throw port,
wherein the first switch controls, at least in part, a first communication path between the single pole port and the first throw port, and
wherein the second switch controls, at least in part, a second communication path between the second throw port and the single pole port.
14. A spdt (single pole double throw) or SPMT (single pole multi-throw) switch system, comprising:
a transformer having a primary winding and a secondary winding, wherein the primary winding and the secondary winding each have respective first and second ends, wherein the first end of the secondary winding is connected to a single pole port, wherein the first end of the primary winding is connected to a first differential port, wherein the second end of the primary winding is connected to a second differential port, wherein the first and second differential ports collectively form a first throw port;
a first switch having a first end and a second end, wherein the first end is connected to ground; and
a second switch having a first end and a second end, wherein the second end of the secondary winding is connected to both the second end of the first switch and the first end of the second switch, wherein the second end of the second switch is connected to a second throw port,
wherein the first switch controls, at least in part, a first communication path between the single pole port and the first throw port, and
wherein the second switch controls, at least in part, a second communication path between the second throw port and the single pole port.
2. The system of
3. The system of
4. The system of
6. The system of
a third switch having a first end and a second end, wherein the first end of the third switch is connected to a second end of the primary winding, and wherein the second end of the third switch is connected to ground,
wherein the third switch and the first switch control, at least in part, the first communication path between the single pole port and the first throw port.
7. The system of
8. The system of
9. The system of
10. The system of
a third switch having a first end and a second end, wherein the transformer further includes a second primary winding having a first end and a second end, wherein the first end of the second primary winding is connected to a third throw port, wherein the second end of the second primary winding is connected to the first end of the third switch, wherein the second end of the third switch is connected to ground, and
wherein the third switch and the first switch control, at least in part, a third communication path between the single pole port and the third throw port.
11. The system of
a fourth switch having a first end and a second end, wherein the first end of the fourth switch is connected to the second end of the secondary winding, the second end of the first switch, and the first end of the second switch, wherein the second end of the fourth switch is connected to a fourth throw port,
wherein the fourth switch controls, at least in part, a fourth communication path between the fourth throw port and the single pole port.
12. The system of
13. The system of
wherein during a transmit mode, the first switch is closed to enable the first communication path between the single pole port and the first throw port, and the second switch is opened to disable the second communication path between the second throw port and the single pole port, and
wherein during a receive mode, the first switch is opened to disable the first communication path between the single pole port and the first throw port, and the second switch is closed to enable the second communication path between the second throw port and the single pole port.
15. The system of
a third switch having a first end and a second end, wherein the first end of the third switch is connected to the second end of the first segment, and wherein the second end of the third switch is connected to first end of the second segment,
wherein the first switch and the third switch control, at least in part, the first communication path between the single pole port and the first throw port.
16. The system of
17. The system of
18. The system of
19. The system of
20. The system of
wherein during a transmit mode, the first switch is closed to enable the first communication path between the single pole port and the first throw port, and the second switch is opened to disable the second communication path between the second throw port and the single pole port, and
wherein during a receive mode, the first switch is opened to disable the first communication path between the single pole port and the first throw port, and the second switch is closed to enable the second communication path between the second throw port and the single pole port.
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The invention relates generally to a single pole double throw (SPDT) switch or a single pole multi-throw (SPMT) switch, and more particularly, to systems and methods for a SPDT switch or SPMT switch with a transformer.
Single pole double throw (SPDT) switches for mobile handsets are typically located between an antenna and a radio front-end. Generally, one switch is located between a transmitter block (TX) output and an antenna; the other is located between a receiver block (RX) input and an antenna. Both switches never close simultaneously to prevent a direct path from TX to RX. The switches are required to have small insertion loss for minimum power loss in transmit mode, and noise figure and large isolation for minimum leakage in receive mode. There exist trade-offs between small insertion loss and large isolation. The size of transistor for a switch should be large to achieve small insertion loss with a multiple parallel configuration, but a large transistor brings parallel large parasitic capacitance and prevents the achievement of large isolation.
High Electron Mobility Transistor (HEMT) technology is currently preferred for implementing a SPDT switch because of its best performance for switch operation due to high breakdown voltage and small parasitic capacitance. However, the technology is one of the most expensive technologies. Moreover, some applications require high power handling capability at the TX switch. In that case, series switches are cascaded to overcome high voltage swing from the high power but high insertion loss cannot be avoided.
Systems and methods may provide a SPDT or SPMT switch with a transformer that may include multiple switches and a transformer. The transmitter block (TX) output network may be provided by the transformer. Two switches may be connected to the secondary winding of the transformer. A first of the two switches, which may operate as a TX switch, may be located between the secondary winding and ground. The voltage swing at the TX switch may be very small at the ON state because of very low impedance. Therefore, the TX switch can be implemented with a transistor which has a low breakdown voltage even though the SPDT or SPMT switch handles high power. Low insertion loss may also be achieved without the need of a cascaded switch structure.
According to an example embodiment of the invention, there is a SPDT (single pole double throw) or SPMT (single pole multi-throw) switch system. The system may include a transformer having a primary winding and a secondary winding, where the primary winding and the secondary winding each have respective first and second ends, where the first end of the secondary winding is connected to a single pole port, where the first end of the primary winding is connected to a first throw port; a first switch having a first end and a second end, where the first end is connected to ground; and a second switch having a first end and a second end, where the second end of the secondary winding is connected to both the second end of the first switch and the first end of the second switch, where the second end of the second switch is connected to a second throw port, where the first switch controls, at least in part, a first communication path between the single pole port and the first throw port, and where the second switch controls, at least in part, a second communication path between the second throw port and the single pole port.
According to another example embodiment of the invention, there is another SPDT (single pole double throw) or SPMT (single pole multi-throw) switch system. The system may include a transformer having a primary winding and a secondary winding, where the primary winding and the secondary winding each have respective first and second ends, where the first end of the secondary winding is connected to a single pole port, where the first end of the primary winding is connected to a first differential port, where the second end of the primary winding is connected to a second differential port, where the first and second differential ports collectively form a first throw port; a first switch having a first end and a second end, wherein the first end is connected to ground; and a second switch having a first end and a second end, where the second end of the secondary winding is connected to both the second end of the first switch and the first end of the second switch, where the second end of the second switch is connected to a second throw port, where the first switch controls, at least in part, a first communication path between the single pole port and the first throw port, and where the second switch controls, at least in part, a second communication path between the second throw port and the single pole port.
Having thus described the invention in general terms, reference will now be made to the accompanying drawings, which are not necessarily drawn to scale, and wherein:
Embodiments of the invention now will be described more fully hereinafter with reference to the accompanying drawings, in which some, but not all embodiments of the invention are shown. Indeed, these inventions may be embodied in many different forms and should not be construed as limited to the embodiments set forth herein; rather, these embodiments are provided so that this disclosure will satisfy applicable legal requirements. Like numbers refer to like elements throughout.
Example embodiments of the invention may provide for a SPDT switch or SPMT switch with a transformer, which may be comprised of multiple switches and one or more transformers. The one or more transformers may be used for implementing a transmit block (TX) output network, according to an example embodiment of the invention. Two switches may be connected to the secondary winding of the transformer. The TX switch may be located between the secondary winding and ground. The voltage swing at the TX switch is very small in the ON state because of very low impedance. Thus, a single switch can be used for TX switch even at high power applications due to the small voltage swing between the secondary winding and ground. The RX path does not require high power handling capability; therefore, the RX switch does not have to be in a cascaded configuration. It will be appreciated that an SPDT switch or SPMT with a transformer may relax the specifications for the component switches for high power applications.
In accordance with an example embodiment of the invention, the component switches of the SPDT switch or SPMT switch may be implemented using a variety of semiconductor technologies, including MOSFETs with standard bulk CMOS technology that are known with very low breakdown voltage. In addition, an example SPDT switch can be integrated with CMOS power amplifiers and CMOS low noise amplifiers (LNAs) as a single chip, according to an example embodiment of the invention. An integrated MOSFET switch may be a cost effective solution for mobile applications, according to an example embodiment of the invention.
Still referring to
An end of the secondary winding of the transformer 331 may be connected to a single pole port, which is connected to the antenna 334. A second end of the secondary winding of the transformer 331 may be connected to switches 332 and 333. The other end of the switch 332 may be connected to ground, and the other end of the switch 333 may be connected to a double throw port, which is connected to the output of the low-power mode PA 336. An end of a primary winding of the transformer 331 may be connected to another double throw port, which is connected to an output of the high-power mode PA 335. The transformer 331 may be used as an output network for the high-power mode PA 335. The secondary winding of the transformer 331 may be used as an output network for the low-power mode PA 336. The high power mode PA 335 operates during a high-power mode for TX. The low-power mode PA 336 operates during a low-power mode for TX. One of two switches is closed for each mode. For example, switch 332 may be closed and switch 333 may be open during a high-power mode in which high-power mode PA 335 is operating. On the other hand, switch 332 may be open and switch 333 may be closed during a low-power mode in which low-power PA 336 is operating.
Still referring to
The transistor switches 442, 443 may be implemented using FETs (Field Effect Transistors), including MOSFETs (Metal Oxide Semiconductor Field Effect Transistors), MESFETs (Metal Semiconductor Field Effect Transistors), and HEMTs (High Electron Mobility Transistors). The transistor switches 442, 443 may be controlled through their respective gates, C1 and C2. It will be appreciated that the transistor switches 442, 443 may be implemented using a semiconductor process, according to an example embodiment of the invention. Likewise, the transformer 441 also may be implemented with metal lines on semiconductor process. Thus, the system 400 may be integrated on a chip using a semiconductor process, according to an example embodiment of the invention.
Still referring to
Still referring to
It will be appreciated that variations of
Single pole Port P1 may be connected to an antenna. A multi-throw port P2 may be connected to a first output of a transmitter block (TX). Multi-throw port P3 may be connected to a second output of another transmitter block (TX). It will be appreciated that the first and second outputs of the TXs may differ based upon applications (e.g., different modulation schemes or signal types) or frequency bands, according to an example embodiment of the invention. Multi-throw port P4 may be connected to a first input of a receiver block (RX). Multi-throw port P5 may be connected to a second input of another receiver block (RX). It will be appreciated that the first and second inputs of the RXs may differ based upon applications (e.g., different modulation schemes or signal types) or frequency bands, according to an example embodiment of the invention. Each primary winding of the multi-primary winding transformer 881 may be used as an output network for a respective power amplifier of each TX. The secondary winding of the transformer 881 may be used as an input network for an LNA of the RXs.
Still referring to
According to an example embodiment of the invention, for TX1 to transmit a signal via the antenna 907, switches 902 and 903 may be closed while switches 904, 905, and 906 may be open. Likewise, for TX2 to transmit a signal via the antenna 907, switches 902 and 904 may be closed while switches 903, 905, and 906 may be open. On the other hand, for RX1 to receive a signal via the antenna 907, switch 905 may be closed while switches 903, 904, 902, and 906 may be opened. Likewise, for RX2 to receive a signal via the antenna 907, switch 906 may be closed whiled switches 903, 904, 902, and 905 may be opened.
Many modifications and other embodiments of the inventions set forth herein will come to mind to one skilled in the art to which these inventions pertain having the benefit of the teachings presented in the foregoing descriptions and the associated drawings. Therefore, it is to be understood that the inventions are not to be limited to the specific embodiments disclosed and that modifications and other embodiments are intended to be included within the scope of the appended claims. Although specific terms are employed herein, they are used in a generic and descriptive sense only and not for purposes of limitation.
Lee, Dong Ho, Lee, Chang-Ho, An, Kyu Hwan, Woo, Wangmyong, Laskar, Joy, Ahn, Minsik
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